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Life Sciences|September 26, 2000
Molecular mechanisms associated with long-term consolidation of the NMDA signalsJ Pláteník, N Kuramoto, Y YonedaFree Radical Research|May 30, 2001
Quinolinic acid-iron(ii) complexes: slow autoxidation, but enhanced hydroxyl radical production in the Fenton reactionJ Pláteník, P Stopka, M Vejrazka, et al.Neurochemistry International|February 1, 1997
The effect of quinolinate on rat brain lipid peroxidation is dependent on ironS Stípek, F Stastný, J Pláteník, et al.Folia Biologica|September 6, 2011
Glucose and its metabolites have distinct effects on the calcium-induced mitochondrial permeability transitionJ Skrha, J Gáll, R Buchal, et al.Biochemistry and Molecular Biology International|April 1, 1995
Lipid peroxidation and superoxide dismutase activity in umbilical and maternal bloodS Stípek, A Mĕchurová, J Crkovská, et al.Kidney & Blood Pressure Research|May 16, 2007
Culture methods of glomerular podocytesJ Krtil, J Pláteník, M Kazderová, et al.Casopis Lekaru Ceskych|November 15, 1995
[The role of oxygen radicals in the pathogenesis of glomerulonephritis]T Zima, V Tesar, S Stípek, et al.Physiological Research|October 27, 2016
The labile iron pool in monocytes reflects the activity of the atherosclerotic process in men with chronic cardiovascular diseaseP Riško, J Pláteník, R Buchal, et al.Renal Failure|January 1, 1996
Lipid peroxidation and antioxidant enzymes in CAPD patientsT Zima, S Stípek, J Crkovská, et al.Neoplasma|January 1, 1996
Antioxidant enzymes and lipid peroxidation in patients with multiple myelomaT Zima, I Spicka, S Stípek, et al.Pageof 2